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Featured researches published by Wenming Ji.


Energy Exploration & Exploitation | 2017

Application of Langmuir and Dubinin–Radushkevich models to estimate methane sorption capacity on two shale samples from the Upper Triassic Chang 7 Member in the southeastern Ordos Basin, China

Lei Chen; Zhenxue Jiang; Keyu Liu; Wenming Ji; Pengfei Wang; Fenglin Gao; Tao Hu

A series of methane sorption isotherms were measured at 303 K, 313 K, 323 K, 333 K, and 343 K at pressures up to 12.0 MPa for two shale samples from the Upper Triassic Chang 7 Member in the southeastern Ordos Basin with total organic carbon content values of 5.15% and 4.76%, respectively. Both the Langmuir- and Dubinin–Radushkevich-based excess sorption models were found to well represent the excess sorption isotherms within the experimental pressure range. The maxima of absolute methane sorption capacity fitted by both models are not significantly different. In the current study, the effects of temperature and pressure on methane sorption capacity support the findings that under isothermal condition, methane sorption capacity of organic shale goes up with increasing pressure and under isobaric condition, while it goes down with increasing temperature. Good negative linear relationships between temperature and maximum sorption capacity exist both in the Langmuir and the Dubinin–Radushkevich models. In addition, a good positive linear relation exists between the reciprocal of temperature and the natural logarithm of Langmuir pressure, which indicate that temperature and pressure are really important for methane sorption capacity. The extended Langmuir and Dubinin–Radushkevich models have been improved to calculate the methane sorption capacity of shales, which can be described as a function of temperature and pressure. By means of using the two estimation algorithms established in this study, we may draw the conclusion methane sorption capacity can be obtained as a function of depth under geological reservoir. Due to the dominant effect of pressure, methane sorption capacity increases with depth initially, till it reaches a maximum value, and then decrease as a result of the influence of increasing temperature at a greater depth. Approximately, the maximum sorption capacity ranges from 400 m to 800 m.


International Journal of Coal Geology | 2014

Geological controls and estimation algorithms of lacustrine shale gas adsorption capacity: A case study of the Triassic strata in the southeastern Ordos Basin, China

Wenming Ji; Yan Song; Zhenxue Jiang; Xiangzeng Wang; Yongqiang Bai; Jinyan Xing


Marine and Petroleum Geology | 2015

Estimation of marine shale methane adsorption capacity based on experimental investigations of Lower Silurian Longmaxi formation in the Upper Yangtze Platform, south China

Wenming Ji; Yan Song; Zhenxue Jiang; Lei Chen; Zhuo Li; Xiao Yang; Mianmo Meng


Marine and Petroleum Geology | 2016

Heterogeneity of intergranular, intraparticle and organic pores in Longmaxi shale in Sichuan Basin, South China: Evidence from SEM digital images and fractal and multifractal geometries

Pengfei Wang; Zhenxue Jiang; Wenming Ji; Chen Zhang; Yuan Yuan; Lei Chen; Lishi Yin


Journal of Natural Gas Science and Engineering | 2016

Effect of lithofacies on gas storage capacity of marine and continental shales in the Sichuan Basin, China

Lei Chen; Zhenxue Jiang; Keyu Liu; Pengfei Wang; Wenming Ji; Fenglin Gao; Peng Li; Tao Hu; Bo Zhang; Hexin Huang


Journal of Natural Gas Science and Engineering | 2015

Investigation on the variation of shale permeability with spontaneous imbibition time: Sandstones and volcanic rocks as comparative study

Mianmo Meng; Hongkui Ge; Wenming Ji; Xiaoqiong Wang; Lei Chen


Journal of Petroleum Science and Engineering | 2016

Research on the auto-removal mechanism of shale aqueous phase trapping using low field nuclear magnetic resonance technique

Mianmo Meng; Hongkui Ge; Wenming Ji; Xiaoqiong Wang


Journal of Petroleum Science and Engineering | 2017

Effects of pore-throat structure on gas permeability in the tight sandstone reservoirs of the Upper Triassic Yanchang formation in the Western Ordos Basin, China

Hexin Huang; Wei Sun; Wenming Ji; Ronghui Zhang; Kun Du; Shaohua Zhang; Dazhong Ren; Youwei Wang; Lei Chen; Xi Zhang


Interpretation | 2017

Relationship between pore characteristics and occurrence state of shale gas: A case study of Lower Silurian Longmaxi shale in the Upper Yangtze Platform, South China

Lei Chen; Zhenxue Jiang; Keyu Liu; Pengfei Wang; Yu Liu; He Bi; Fenglin Gao; Chen Zhang; Wenming Ji


Journal of Natural Gas Science and Engineering | 2018

Impact of Laminae on Gas Storage Capacity: A case study in Shanxi Formation, Xiasiwan Area, Ordos Basin, China

Hexin Huang; Wei Sun; Wenming Ji; Lei Chen; Zhenxue Jiang; Yunyun Bai; Xianglu Tang; Kun Du; Yiqian Qu; Siqi Ouyang

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Lei Chen

China University of Petroleum

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Zhenxue Jiang

China University of Petroleum

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Fenglin Gao

China University of Petroleum

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Mianmo Meng

China University of Petroleum

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Pengfei Wang

China University of Petroleum

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Hongkui Ge

China University of Petroleum

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Yan Song

China University of Petroleum

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Keyu Liu

Commonwealth Scientific and Industrial Research Organisation

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Chen Zhang

China University of Petroleum

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Tao Hu

China University of Petroleum

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